Functional and structural analyses of cryptochrome. Vertebrate CRY regions responsible for interaction with the

Jun Hirayama1, Haruki Nakamura, Tomoko Ishikawa

  • 1Radiation Biology Center, Kyoto University, Kyoto 606-8501, Japan.

Insights

Cryptochromes (CRYs) regulate gene expression by interacting with CLOCK:BMAL1. Specific regions within CRY proteins are crucial for nuclear translocation and CLOCK:BMAL1 interaction, enabling transcriptional repression.

Area of Science:

  • Molecular Biology
  • Chronobiology
  • Genetics

Background:

  • Cryptochromes (CRYs) are proteins involved in DNA repair and circadian rhythms.
  • Mouse CRY1 (mCRY1) and zebrafish CRYs (zCRY1a, zCRY3) are part of the DNA photolyase/Cryptochrome family.
  • mCRY1 and zCRY1a inhibit CLOCK:BMAL1 transcription, but zCRY3 does not.

Purpose of the Study:

  • To identify regions in zCRY1a responsible for nuclear translocation and interaction with CLOCK:BMAL1.
  • To understand the mechanism of transcriptional repression by Cryptochromes.

Main Methods:

  • Generating reciprocal chimeras between zCRY1a and zCRY3.
  • Analyzing protein domains (RD-2a, RD-1, RD-2b) for functional significance.
  • Identifying the nuclear localizing signal within the RD-2b region.

Main Results:

  • Three key regions (RD-2a, RD-1, RD-2b) were identified in Cryptochromes.
  • RD-2a or RD-1 is necessary for CLOCK:BMAL1 heterodimer interaction.
  • RD-1 or RD-2b is essential for nuclear translocation of CRY, with RD-2b containing the nuclear localizing signal.
  • Mutations in the nuclear localizing signal of mCRY1 reduced its nuclear localization.

Conclusions:

  • Both nuclear localization and interaction with the CLOCK:BMAL1 heterodimer are essential for transcriptional repression by Cryptochromes.
  • The identified regions and nuclear localizing signal are conserved among repressor-type CRYs.